Radar Signal Analysis With Oscilloscope Demodulation
Learn how oscilloscope demodulation and FFTs reveal radar pulse envelopes, Barker-coded phase modulation, chirp behavior, and frequency content.
Three-phase AC voltages consist of three balanced sinusoidal vectors separated by 120°, with measurable differences between line-to-line and line-to-neutral values.
AC line current is a rotating sinusoidal vector—single- or three-phase—whose accurate measurement depends on system configuration and the right choice of current sensor.
Understanding Wye and Delta configurations and line-line versus line-neutral voltages is essential for accurate three-phase AC calculations.
Distorted voltage and current waveforms require per-cycle digital sampling methods to accurately calculate real, apparent, and reactive power.
Understanding phase angle and power factor is essential for correctly calculating real, apparent, and reactive power in sinusoidal AC systems.
Three-phase power is calculated by summing individual phase values, with special considerations for line-to-line measurements, delta windings, and two-wattmeter methods.
Clear definition of DUT boundaries and correct interpretation of port indexing are essential to accurately measuring and understanding S-parameters.
Understanding the differences between reflection coefficient, return loss, transmission coefficient, and insertion loss eliminates common S-parameter confusion.
CAT ratings define measurement safety based on source impedance and location—not probe performance or measurement accuracy.
Characterizing PDN noise—whether from self-aggression, board coupling, or mutual aggressors—is essential to maintaining millivolt-level power integrity margins.
Board pollution noise arises when switching activity and VRM ripple couple onto PCB power planes, and spectral analysis can reveal the dominant aggressors.
Self-aggression noise arises from a device’s own switching activity, creating ripple and rail disturbances even in otherwise steady-state conditions.